The following description relates to using inflating devices (e.g., using a hand pump) to inflate sports balls, tires, inner tubes, etc., including devices for regulating the pressure of inflatable objects and pumps with selectable volume capabilities.
Traditional bicycle floor pumps come with a variety of features. One of the main features of more expensive pumps is to have a pressure gauge on the pump that allows the user to see how much pressure has been applied to the air cavity/tire. Some traditional floor pumps do not have any type of gauge on of the pump. They simply rely on the user to fill up their tires approximately. Most users will either give their tire a squeeze with their fingers to see if it is soft or too hard. This can be dangerous because riding with either too much pressure or too little pressure can affect the traction of your tire during a ride. Too much pressure can lead to a blow-out causing immediate tire failure. Alternatively, users may use some type of auxiliary pressure gauge that reads pressure in the tires, but this is inconvenient because the pump must be removed from the inflatable object to check the pressure in the tires.
A consumer who does not value the importance of the correct tire pressure may be a novice or recreational rider. This type of rider typically may not know what the correct pressure for their tire is, nor do they carry an auxiliary pressure gauge to check. A recreational rider would typically purchase a floor pump without a gauge because it offers the best value proposition.
It is desirable to develop a low cost, portable pump that provides a simple way for a user to inflate objects such as sports equipment and tires to a suitable pressure for their use.
Provided is a pump comprising a pressure regulator comprising a first air passage wherein a first end of the first air passage is configured to be in fluid communication with an outlet of a pump and a second end of the first air passage forms a junction with a second air passage having a first end and a second end wherein the junction of the first air passage is disposed between the first and second ends of the second air passage; wherein the first end of the second air passage is configured to be in fluid communication with an inflatable object; wherein the second end of the second air passage comprises a piston disposed therein, wherein the piston is slidingly engaged with the interior surface of the second end of the air passage and a distal end of the piston passes through an opening in the distalmost end of second end of the second air passage and is attached an inner surface of a base of a cap having a side wall attached to at least a portion of the base and disposed overlying and slidingly engaged with at least a portion of the exterior surface of the second end of the second air passage; a coil spring disposed around the piston and inside the second end of the second air passage; an opening in the side wall of the second end of the second air passage in fluid communication with a vent to the air external to the pressure regulator; wherein the piston and attached cap are configured to move distally away from the junction as pressure inside the second end of the second air passage increases, wherein the coil spring is in a non-compressed state when the interior of the pressure regulator is not pressurized and is in a compressed state when the interior of the pressure regulator is pressurized; when the pressure inside the second air passage is at or below a defined set point, the opening is blocked by the piston, and when the pressure inside the second air passage is above a defined set point, the opening is not blocked by the piston and air from inside the second air passage is vented to the air external to the pressure regulator.
Embodiments of the pump include the following, alone or in any combination.
The pump wherein venting of air through the opening in the sidewall of the second end of the second air passage produces a sound audible to a user of the pump.
The pump comprising a vibratory element that augments the sound of air venting through the opening in the sidewall of the second end of the second air passage.
The pump wherein decompression of the spring during venting air out of the pressure regulator pushes the proximal end of the piston back toward the junction, thereby covering the opening in the sidewall and blocking venting.
The pump comprising a visual indicator wherein the sidewall of the cap overlays substantially the entire length of the second end of the second air passage when the pressure regulator is not pressurized and the cap slides distally along the exterior surface of the second end of the second air passage and exposes indicia under the sidewall of the cap indicating a pressurized state as pressure increases.
The pump wherein the cap is configured to rotate about an axis defined by the second end of the second air passage, wherein when the cap is rotated to be disposed at a first position the cap is slidable along the second end of the second air passage and the audible low pressure blow off is enabled, and when the cap is rotated to be disposed at a second position the cap is not slidable along the second end of the second air passage and the audible low pressure blow off is disabled.
The pump wherein the pressure set point of the pressure regulator is in a range from about 30 to about 100 psi.
The pump wherein the pressure set point of the pressure regulator is about 40 psi.
The pump wherein the pressure set point of the pressure regulator is about 70 psi.
The pump wherein the pressure regulator comprises a plurality of different pressure set points.
The pump wherein the pressure regulator comprises a first pressure set point of about 40 psi and a second pressure set point of about 70 psi.
The pump further comprising a larger diameter barrel for inflating an inflatable object with a higher volume at a lower pressure and a smaller diameter barrel for inflating an inflatable object with a lower volume at a higher pressure, wherein the pump is switchable to operate using either the larger diameter barrel or the smaller diameter barrel.
The pump wherein the smaller diameter barrel is configured to be telescopically disposed inside the larger diameter barrel and is switchable to be selectively attached to a plunger shaft attached to a handle so that the smaller diameter barrel operates reciprocally in the larger diameter barrel; or selectively attached to the larger diameter barrel so that the plunger shaft operates reciprocally in the smaller diameter barrel.
The pump wherein the pump comprises a lever rotatably attached to an upper end cap of the smaller diameter barrel; wherein when the lever is rotated to a first position wherein the lever is engaged with a portion of the circumference of the surface of a handle and an upper face of a flange on a plunger shaft proximate to the handle to lock the lever and the upper end cap of the smaller diameter barrel to the plunger shaft, whereby moving the plunger shaft up and down moves the smaller diameter barrel reciprocally within the larger diameter barrel and the pump is effective as a larger volume relatively lower pressure device; and wherein when the lever is rotated to a second position wherein the lever is engaged with a portion of the circumference of a surface of an upper end cap of the larger diameter barrel and a lower face of a flange on the upper end cap of the larger diameter barrel to lock the lever and the upper end cap of the smaller diameter barrel to the upper end cap of the larger diameter barrel, whereby moving the plunger shaft up and down moves a plunger at the bottom of the plunger shaft reciprocally within the smaller diameter barrel and the pump is effective as a smaller volume relatively higher pressure device.
The pump wherein venting of air through the opening in the sidewall of the second end of the second air passage produces a sound audible to a user of the pump.
The pump comprising a vibratory element that augments the sound of air venting through the opening in the sidewall of the second end of the second air passage.
The pump wherein decompression of the spring during venting air out of the pressure regulator pushes the proximal end of the piston back toward the junction, thereby covering the opening in the sidewall and blocking venting.
The pump comprising a visual indicator wherein the sidewall of the cap overlays substantially the entire length of the second end of the second air passage when the pressure regulator is not pressurized and the cap slides distally along the exterior surface of the second end of the second air passage and exposes indicia under the sidewall of the cap indicating a pressurized state as pressure increases.
The pump wherein the cap is configured to rotate about an axis defined by the second end of the second air passage, wherein when the cap is rotated to be disposed at a first position the cap is slidable along the second end of the second air passage and the audible low pressure blow off is enabled, and when the cap is rotated to be disposed at a second position the cap is not slidable along the second end of the second air passage and the audible low pressure blow off is disabled.
The pump wherein the pressure set point of the pressure regulator is in a range from about 30 to about 100 psi.
The pump wherein the larger diameter barrel has an inner diameter from 40 to 50 mm.
The pump wherein the smaller diameter barrel has an inner diameter from about 25 to about 35 mm.
Another aspect provides a pressure regulator comprising a first air passage wherein a first end of the first air passage is configured to be in fluid communication with an outlet of a pump and a second end of the first air passage forms a junction with a second air passage having a first end and a second end wherein the junction of the first air passage is disposed between the first and second ends of the second air passage; wherein the first end of the second air passage is configured to be in fluid communication with an inflatable object; wherein the second end of the second air passage comprises a piston disposed therein, wherein the piston is slidingly engaged with the interior surface of the second end of the air passage and a distal end of the piston passes through an opening in the distalmost end of second end of the second air passage and is attached an inner surface of a base of a cap having a side wall attached to at least a portion of the base and disposed overlying and slidingly engaged with at least a portion of the exterior surface of the second end of the second air passage; a coil spring disposed around the piston and inside the second end of the second air passage; an opening in the side wall of the second end of the second air passage in fluid communication with a vent to the air external to the pressure regulator; wherein the piston and attached cap are configured to move distally away from the junction as pressure inside the second end of the second air passage increases, wherein the coil spring is in a non-compressed state when the interior of the pressure regulator is not pressurized and is in a compressed state when the interior of the pressure regulator is pressurized; when the pressure inside the second air passage is at or below a defined set point, the opening is blocked by the piston, and when the pressure inside the second air passage is above a defined set point, the opening is not blocked by the piston and air from inside the second air passage is vented to the air external to the pressure regulator.
Embodiments of the pressure regulator include the following, alone or in any combination.
The pressure regulator wherein venting of air through the opening in the sidewall of the second end of the second air passage produces a sound audible to a user of the pump; optionally wherein the pump further comprises a vibratory element that augments the sound of air venting through the opening in the sidewall of the second end of the second air passage.
The pressure regulator wherein decompression of the spring during venting air out of the pressure regulator pushes the proximal end of the piston back toward the junction, thereby covering the opening in the sidewall and blocking venting.
The pressure regulator wherein the cap is configured to rotate about an axis defined by the second end of the second air passage, wherein when the cap is rotated to be disposed at a first position the cap is slidable along the second end of the second air passage and the audible low pressure blow off is enabled, and when the cap is rotated to be disposed at a second position the cap is not slidable along the second end of the second air passage and the audible low pressure blow off is disabled.
The pressure regulator comprising a visual indicator wherein the sidewall of the cap overlays substantially the entire length of the second end of the second air passage when the pressure regulator is not pressurized and the cap slides distally along the exterior surface of the second end of the second air passage and exposes indicia under the sidewall of the cap indicating a pressurized state as pressure increases.
The pressure regulator wherein the pressure set point is in a range from about 30 to about 100 psi.
The pressure regulator wherein the pressure set point is about 40 psi.
The pressure regulator wherein the pressure set point is about 70 psi.
The pressure regulator of claim 23 comprising a plurality of different pressure set points.
The pressure regulator wherein the pressure regulator comprises a first pressure set point of 40 psi and a second pressure set point of about 70 psi.
Another aspect provides a pump comprising a larger diameter barrel for inflating an inflatable object with a higher volume at a lower pressure and a smaller diameter barrel for inflating an inflatable object with a lower volume at a higher pressure, wherein the pump is switchable to operate using either the larger diameter barrel or the smaller diameter barrel; wherein the smaller diameter barrel is configured to be telescopically disposed inside the larger diameter barrel and is switchable to be selectively attached to a plunger shaft attached to a handle so that the smaller diameter barrel operates reciprocally in the larger diameter barrel; or selectively attached to the larger diameter barrel so that the plunger shaft operates reciprocally in the smaller diameter barrel.
The pump wherein the pump comprises a lever rotatably attached to an upper end cap of the smaller diameter barrel; wherein when the lever is rotated to a first position wherein the lever is engaged with a portion of the circumference of the surface of a handle and an upper face of a flange on a plunger shaft proximate to the handle to lock the lever and the upper end cap of the smaller diameter barrel to the plunger shaft, whereby moving the plunger shaft up and down moves the smaller diameter barrel reciprocally within the larger diameter barrel and the pump is effective as a larger volume relatively lower pressure device; and wherein when the lever is rotated to a second position wherein the lever is engaged with a portion of the circumference of a surface of an upper end cap of the larger diameter barrel and a lower face of a flange on the upper end cap of the larger diameter barrel to lock the lever and the upper end cap of the smaller diameter barrel to the upper end cap of the larger diameter barrel, whereby moving the plunger shaft up and down moves a plunger at the bottom of the plunger shaft reciprocally within the smaller diameter barrel and the pump is effective as a smaller volume relatively higher pressure device.
The pump wherein the larger diameter barrel has an inner diameter from about 40 to about 50 mm.
The pump wherein the smaller diameter barrel has an inner diameter from about 25 to about 35 mm.
In some conventional pressure regulation devices, a flow restriction exists between the pumping device and the inlet to the inflatable object which requires pressures significantly higher than the target pressure to push the inflating fluid into the inflatable object at a satisfactory rate. This presents a significant problem for using a traditional pressure regulator or relief valve with such conventional pressure regulation devices. Simply adding a pressure relief valve or pressure regulator inline will either result in the valve opening prematurely as a result of the increased pressure required to force the inflating fluid through the inlet orifice or will require minimal airflow into the inflatable object, thus significantly prolonging the time required for inflation.
In some cases, the pressure regulation devices and techniques described here allow a user to inflate an object and, once the desired internal pressure has been reached or exceeded, the pressure regulation device will vent the internal pressure of the inflation object to the target level and alert the user. In the examples described here, a pressure regulating device is incorporated into an inflation pump for the inflation of sports balls (e.g., soccer balls, volleyballs, basketballs, footballs, etc.), air mattresses, bicycle tires, automobile tires, floating objects (e.g., rafts and other water craft, pool toys, etc.), and potentially other types of inflatable objects.
In some implementations, the pressure regulation devices and techniques described here may provide technical improvements and advantages over conventional products. For example, the pressure regulation device may, in some instances, ensure correct inflation of the inflatable object without a pressure gauge; allow a user to accurately inflate an inflatable object without knowledge of correct inflation pressure; actively regulate the pressure (e.g., by releasing air) while a user is operating the pump, thus eliminating the need for the user to pause pumping to evaluate the pressure (which may, in turn, reduce inflation time). Any combination of these and other improvements and advantages may be provided in some cases.
Most human-powered pumps used to inflate bicycle tires are reciprocating pumps. They have a piston inside an outer cylinder attached by a connecting rod to a handle for reciprocating the piston within the outer cylinder and two one-way valves: one at the outlet of the pump going to the bicycle tire and one at the inlet for outside air to enter the pump. When the pump handle is pulled out, the volume of the space defined by the piston and the outer cylinder increases and air pressure inside decreases. This draws in air from the outside through the inlet valve and closes the valve at the outlet to the bike tire. When the piston is pushed in again, it compresses the air inside. This closes the inlet valve and opens the outlet valve to the tire, pushing air into the tire.
Reciprocating pumps may take several forms. A common form is a floor pump (see
A mini-pump is a small reciprocating pump configured so that a user holds the outer cylinder with one hand, usually near the outlet end of the mini-pump and moves the piston in and out of the pump with the other hand.
A frame pump is a portable pump that is designed to fit within a bicycle frame and become a part of the bike's front triangle until it is needed. It is similar in operation to the mini-pump but may have larger pumping capacity.
A foot pump comprises an outer cylinder/piston assembly disposed generally horizontally and the piston is reciprocated within the cylinder by a foot treadle rather than a handle. Typically, a foot pump may have a shorter, wider-diameter outer cylinder than a floor pump.
Described herein is a pressure regulator that is preset by the manufacturer to stop transferring air to a tire or other inflatable object once a determined pressure, such as measured in pounds per square inch (psi) or kilopascal (kPa), is met. The pressure regulator is configured to be used together with a reciprocating pump as described above, either as a built-in integrated feature at the pump outlet, or as a modular device configured for attachment to the outlet portion of the pump.
The pressure regulator does not require the user to read any gauges. It alerts the user that they can stop pumping when they hear an audible air release from the pump during their in/out strokes. The pressure at which the pump “blows off” audibly through the pressure regulator may be set at a pressure value of from about 30 to about 100 psi (about 207 kPa to 689 kPa), including a “medium” pressure value from about 30 to about 50 psi (207 kPa to 345 kPa), such as specifically at 40 psi (276 kPa), which is generally a good pressure for the majority of the bicycles that are ridden by a novice or recreational rider who might not want to spend much on a pump or have much knowledge of what pressure their tires need. Tires on children's, mountain, beach cruiser, BMX bicycles typically require inflation to such pressures and are typically thought of as “fat” tires. Alternatively, the pressure regulator may be set at a higher pressure from about 60 to about 100 psi (about 414 to 689 kPa), such as wherein the “blow off” will be at about 70 psi (483 kPa) to provide, e.g. a higher pressure pump for inflating bicycle tires for road and hybrid bicycles. Such tires are typically thought of as “skinny” tires.
In other embodiments, the pressure blow-off may be designed for a “low” pressure below about 20 psi (128 kPa) to be used to inflate various sports balls or other inflatables. For example, volleyballs are to be inflated to a range of 4.2 to 4.6 psi (29 to 32 kPa), basketballs to a range of 7.5 to 8.5 psi (52 to 59 kPa), soccer balls to a range of 8.5 to 15.6 psi (59 to 109 kPa), and footballs to a range of 12.5 to 13.5 psi (86 to 93 kPa). Mini-pumps incorporating a pressure regulator as described herein with a blow-off set at one of these pressure settings may be useful for correctly inflating sports balls to a consistent pressure for individual use or for use in group athletic events such as practices, games and tournaments where multiple balls are used. A pump configured to have pressure regulator(s) with blow-off settings for different types of sports balls may be particularly useful for sports organizations such as schools, clubs, etc. that conduct multiple sports using different balls.
The pump 100 also comprises a stand 114 with footpad(s) for a user to stand on and stabilize the pump 100 during pumping.
The box with the dashed outline in
The interior of the pressure regulator 150 is shown in
Cap 151 comprises a base 151a and a side wall 151b attached to at least a portion of the base 151a and disposed overlying and slidingly engaged with at least a portion of the exterior surface of air passage 154. The distal end of piston 155 is attached to the center of the inner surface of the base 151a and is slidingly engaged with the interior surface of the second end of the air passage 154, 154b. A coil spring 156 is disposed around piston 155 and inside 154b. Flanges at the proximal end of piston 155 and the distalmost portion of second end 154b hold the spring 156. In the resting position, spring 156 is in a neutral or non-compressed state. A rubber seal 157 disposed on the proximal end of the piston 155 slidingly engages the inner surface of air passage 154 and provides a substantially air-tight seal.
Blow off outlet 152 comprises a small (such as a pinhole) opening 152a in fluid communication with air passage 154 within the second end 154b. Blow off outlet 152 also comprises vent 152b that directs air from opening 152a into the environment exterior to the pressure regulator 150. In the resting position shown in
By way of illustration, a first “in” stroke of pump 100 pushes an amount of air from the outlet 119 into air passage 153 and pressure throughout the closed volume may be, for example, equal to 5 psi (34 kPa) and piston 155 is pushed in the direction indicated by the arrow. Continued pumping will result in incremental increases of pressure during each “in” stroke. When the pressure inside air passage 154 exceeds a defined set point (for example 40 psi (276 kPa)) by a small amount, the proximal end of piston 155 is advanced sufficiently down air passage 154b to expose the opening 152a and allow a portion of the air pumped into the air passages to escape through vent 152b. Venting of air continues until the pressure falls to 40 psi (276 kPa), at which point the piston 155 blocks opening 152a and prevents further venting.
The configuration of the pump 100 and pressure regulator 150 shown in
As discussed above, the pressure regulator 150 may be integrated into a pump at time of manufacture, or may be configured as an attachable module to convert an existing pump to a pump comprising the audible blow off feature embodied in pressure regulator 150. For example, a pressure regulator 150 may be inserted between outlet 119 and hose 112 of an existing pump. Alternatively, pressure regulator 150 may be configured to be attached to pumphead 113 of an existing pump and may comprise a pumphead similar to pumphead 113 to attach directly to the inlet of an inflatable object.
Also, pressure regulator 150 is shown in
In some embodiments, the orientation of the air passages may not be in the T-shape as shown. For example, air passages 153 and 154a may be configured to be collinear, with air passage 154b directed away from collinearity, such as configured to be perpendicular to 153 and 154a, at junction 154c. In other embodiments air passages 153 and 154b may be configured to be collinear, with air passage 154a directed away from collinearity, such as configured to be perpendicular to 153 and 154b, at junction 154c. In other embodiments, one or more of air passages 153, 154a and 154b may comprise one or more turns proximate to junction 154c to provide a more compact shape. For example, one or both of air passages 154a and 154b may comprise a turn so that air passages 154a and 154b are substantially parallel. In other examples, one or both of air passages 154a and 154b may comprise a turn so that one or both of air passages 154a and 154b are substantially parallel to air passage 153. In other examples, air passage 153 may comprise a turn so that it is substantially parallel to either 154a or 154b.
Further, air passages 153, 154a and 154b are depicted in 1A through 2B as being substantially coplanar, but this is not limiting.
In addition to the audible indicator of this pump described above, the pressure regulator 150 may also include a visual indicator. This provides a secondary indicator that increases the usefulness of this pump. For example, if someone is hearing impaired this visual aspect maybe of importance. As shown in
An optional feature of the pressure regulator 150 is that it comprises a second mode that is activated by the user in which a switch is rotated to cancel the blow off at 40 psi (276 kPa). This will allow the user to continue pumping past 40 psi (276 kPa) all the way up the maximum pressure the pump can handle without any blow-off feature. This may be used in an instance where a user wishes to inflate tires for two different types of bicycles, one for pressure below or at 40 psi (276 kPa) using the blow off feature, and canceling the blow off feature to be used on a road or hybrid bicycle that requires inflation to be more than 40 psi (276 kPa).
In an exemplary embodiment of this lock-out option the visual indicator described above also doubles as the switch to activate the lock-out mode. This embodiment is illustrated in
The lock-out mode is activated by rotating cap 151 forward/downward (clockwise when viewed along the axis indicated by the dotted line shown in
Although the preceding discussion relates generally to embodiments wherein the pressure regulator has a single blow-off setting, in some embodiments, two or a plurality of blow-off settings may be envisioned in the pressure regulator. For example, a pressure regulator as described herein may be used in conjunction with a reciprocating pump for inflating bicycle tires at two (or more) different pressures, such as a blow-off setting at 40 psi (276 kPa) for inflating medium pressure tires and a blow-off setting at 70 psi (483 kPa) for inflating high pressure tires.
In embodiments having two or more blow-off settings, a selector mechanism selectively blocks passage of air from flowing out of the pressure regulator 150 at a lower pressure setting, such as 40 psi (276 kPa). This allows air pressure to continue to rise in the pressure regulator 150, pushing piston 155 further distally until it reaches a higher pressure blow-off setting, such as 70 psi (483 kPa).
An exemplary embodiment of a pressure regulator with two blow off settings is illustrated in
Other embodiments of a pressure regulator having two or more blow off settings may be envisioned, wherein the selector mechanism selectively blocks air from flowing out of a lower pressure setting and allows airflow out of a higher pressure setting.
Multiple pressure set points could be made that way. This could be useful for a “tunable” pressure regulator, such as one with a pressure set point for each type of sports ball. In an embodiment, the tunable pressure regulator can be a stand-alone pressure regulator that could attach to any pump to inflate objects (such as bicycle tires or different sports balls) to the correct pressure. In other embodiments, a pump with an integral tunable pressure regulator is envisioned.
A pressure regulator as described herein could be especially useful for a dual mode pump, such as described below. Pumping to the first set point would trigger the audible alert and signal the user to switch from high volume/lower pressure mode to low volume/higher pressure mode.
Embodiments of the pressure regulator described in the Summary of the Disclosed Subject Matter include the following:
The pressure regulator wherein venting of air through the opening in the sidewall of the second end of the second air passage produces a sound audible to a user of the pressure regulator.
The pressure regulator comprising a vibratory element that augments the sound of air venting through the opening in the sidewall of the second end of the second air passage.
The pressure regulator wherein the vibratory element comprises a reed.
The pressure regulator wherein decompression of the spring during venting air out of the pressure regulator pushes the proximal end of the piston back toward the junction, thereby covering the opening in the sidewall and blocking venting.
The pressure regulator comprising a visual indicator wherein the sidewall of the cap overlays substantially the entire length of the second end of the second air passage when the pressure regulator is not pressurized and the cap slides distally along the exterior surface of the second end of the second air passage and exposes indicia under the sidewall of the cap indicating a pressurized state as pressure increases.
The pressure regulator wherein the pressure set point is in a range from 30 to 50 psi (207 kPa to 345 kPa), or from 30 to 100 psi (207 kPa to 689 kPa).
The pressure regulator wherein the pressure set point is 40 psi (276 kPa).
The pressure regulator wherein the pressure set point is in a range from 60 to 100 psi (414 to 689 kPa).
The pressure regulator wherein the pressure set point is 70 psi (483 kPa).
The pressure regulator wherein the pressure set point is in a range from 4 to 20 psi (28 to 128 kPa).
The pressure regulator comprising a plurality of different pressure set points.
The pressure regulator comprising a first pressure set point of 40 psi (276 kPa) and a second pressure set point of 70 psi (483 kPa).
The pressure regulator wherein the cap is configured to rotate about an axis defined by the second end of the second air passage, wherein when the cap is rotated to be disposed at a first position the cap is slidable along the second end of the second air passage and the audible low pressure blow off is enabled and when the cap is rotated to be disposed at a second position the cap is not slidable along the second end of the second air passage and the audible low pressure blow off is disabled.
This disclosure also provides a pump comprising a pressure regulator as described above, including any of the embodiments described above alone or in combination.
Embodiments of the pump comprising the pressure regulator include the following:
The pump comprising a floor pump, a mini-pump, a frame pump or a foot pump.
The pump comprising a floor pump.
The pump comprising a dual mode pump comprising a larger diameter barrel for inflating an inflatable object with a higher volume at a lower pressure and a smaller diameter barrel for inflating an inflatable object with a lower volume at a higher pressure, wherein the pump is switchable to operate using either the larger diameter barrel or the smaller diameter barrel.
The dual mode pump wherein the smaller diameter barrel is configured to be telescopically disposed inside the larger diameter barrel and is switchable to be selectively attached to a plunger shaft attached to a handle so that the smaller diameter barrel operates reciprocally in the larger diameter barrel; or selectively attached to the larger diameter barrel so that the plunger shaft operates reciprocally in the smaller diameter barrel.
This invention also provides a dual mode reciprocal pump. As used herein a dual mode pump is a pump that that combines both large and small diameter barrels into one pump. A larger diameter barrel provides faster filling at lower pressures, such as below about 40 psi (276 kPa), by moving larger volumes of air through the pump. At pressures above about 40 psi (276 kPa) pumping effort may be too high for a user to use a larger diameter pump easily. A smaller diameter pump provides for easier pumping at higher pressures, but smaller volumes are moved through the pump. This may require a user to pump a smaller barrel pump significantly more times to obtain desired pressure in an inflatable object such as a bicycle tire.
Larger (e.g. 44 mm) diameter barrel floor pumps are generally reserved for bicycle tires that require lower pressure but more volume, including tires such as children's bike, mountain bike, beach cruiser or BMX tires. The large barrel allows user to quickly fill up large tires quickly due to the increased volume per stroke that a large barrel produces.
Generally, smaller (e.g. 32 mm) diameter barrel pumps are reserved for tire types that require higher pressures greater than 60 psi (414 kPa) due to the effort level required by the user. These are generally road and hybrid style bicycles that have skinny tires. An easy way to think of it is that large or fat tires are inflated using a large barrel and skinny tires are inflated using a skinny barrel.
In a dual mode pump, the user is able to select which “mode” they want to use, either a larger diameter barrel for lower pressures or a smaller diameter barrel for higher pressures.
This disclosure also provides a pump with dual mode capabilities comprising a larger diameter barrel for inflating an inflatable object with a higher volume at a lower pressure and a smaller diameter barrel telescopically disposed within the larger diameter barrel or inflating an inflatable object with a lower volume at a higher pressure as described above in the Summary of the Disclosed Subject Matter.
The dual mode pump disclosed herein combines both a small (for example, 32 mm inner diameter) and large (for example, 44 mm inner diameter) barrel floor pumps into one unit. In the instance where the user has a variety of different bicycles with both skinny and fat tires, a dual mode pump is a desirable pump that works universally well and most efficiently.
The dual mode pump disclosed herein combines both a small (for example, 32 mm inner diameter) and large (for example, 44 mm inner diameter) barrel floor pumps into one unit. In the instance where the user has a variety of different bicycles with both skinny and fat tires, a dual mode pump is a desirable pump that works universally well and most efficiently.
In embodiments, the larger diameter barrel has an inner diameter from 40 to 50 mm, such as 44 mm. In embodiments, the smaller diameter barrel has an inner diameter from 25 to 35 mm, such as 32 mm.
The other benefit of the dual mode pump is improved efficiency. It allows a user to inflate an inflatable object to a first lower pressure using a large diameter barrel until pumping effort become uncomfortable and then switch to the small diameter barrel to finish inflating the object.
As shown in
In accordance with the invention, the pump 500 is selectively operable as either a larger volume, low pressure pump or a smaller volume, higher pressure pump based on the position of a single selector lever 511 relative to the other parts of the pump, including the respective end caps on the low pressure cylinder 110 or the high pressure cylinder 530, the plunger shaft 560 and the handle 111.
Selector mechanism 510 comprises a lever 511 with a specific shape to engage other parts of the pump in order to select which mode the pump is configured. Lever 511 comprises flanges 512a and 512b (not shown) on opposite sides of lever 511. Flanges 512a and 512b are configured with openings that engage hinge pins 542a and 542b, respectively, so that lever 511 can rotate from a first position to a second position. Lever 511 also comprises a flange 515 that facilitates a user moving the lever between first and second positions. Cut-out 514 (see
The first upper end cap 520 has a central bore 521 in which the smaller high pressure barrel 530 reciprocates, an O-ring seal (not shown) being seated in the end cap around that barrel. The first upper end cap 520 also comprises a flange 522 on at least a portion of the circumference of the first upper end cap 520. The second upper end cap 540 has a central bore 543 (see
Selector mechanism 510 comprises a lever 511 with a specific shape to engage other parts of the pump in order to select which mode the pump is configured. Lever 511 comprises flanges 512a and 512b on opposite sides of lever 511. Flanges 512a and 512b are configured with openings that engage hinge pins 542a and 542b, respectively, so that lever 511 can rotate from a first position to a second position. Lever 511 also comprises a flange 515 that facilitates a user moving the lever between first and second positions. Cut-out 514 (see
In this configuration, lower end cap 570 operates as a plunger within the larger diameter barrel 110 and the pump is effective as a larger volume, relatively lower pressure device for fast inflation of inflatable articles such as tires.
In operation, outlet 119 and an article to be inflated are connected, such as via hose 112 and pumphead 513. When handle 111 (not shown) and connected plunger shaft 560 are moved upward as in
When plunger shaft 560 is moved downward as shown in
When the article is inflated to the point that operation of the pump becomes difficult due to pressure in the article, the lever 511 is rotated into the second or “down” position as shown in
In the low volume mode, the bottom of the lower end cap 570 is locked in contact with the bottom of the large barrel 110 so that the outlet 572 at the bottom of the smaller barrel 530 is in fluid communication with the outlet at the bottom of the larger barrel 110.
In operation in the low volume mode, when plunger shaft 560 is moved upward as in
When plunger shaft 562 is moved downward as shown in
For illustration, if a user has a tire that requires higher pressure, they can start off by flipping the selector lever up which enables the larger barrel (44 mm) and allows for large volumes of air per stroke. This will prime the tire quickly with less strokes. Once the pumping starts to get difficult due to the pressure building, the user can then flip the selector lever down to enable the small barrel (32 mm). This will allow the user to reach the higher pressures with much less effort per stroke. Switching modes is a great added benefit.
The diameters of the cylinders and the pressures described above are not limiting. The operating principles described herein can be used can be used with other sizes of dual mode pumps. For illustration, the cylinder diameters may be smaller when used in a dual mode frame pump.
For illustration, instead of a bicycle tire, the inflatable object may be an inflatable water craft such as an inflatable raft, inflatable stand-up paddle board, inflatable kayak or boats comprising inflatable buoyancy elements and rigid hull elements such as a rigid inflatable boat (RIB), also known as a rigid-hull inflatable boat or rigid-hulled inflatable boat (RHIB). These watercraft require more air volume than bicycle tires, so larger volume pumps may be desirable for inflating them. Conversely, they may be inflated to lower pressures than bicycle tires. For example, a dual mode pump as described herein may comprise a first, large diameter, high volume pump barrel may be used to inflate the inflatable water craft to about 3 psi (21 kPa), and then a user can switch to the smaller diameter pump mode to raise the pressure to about 7 psi (48 kPa).
A notable dual mode pump as described herein comprises a pressure regulator having an audible pressure blow off as described herein. For example, pressure gauge 550 in
Alternatively, a user could begin pumping a higher pressure tire (e.g. one that requires inflation to over 60 psi (414 kPa)) using the high volume, low pressure mode with mode selection lever 511 in the up position and the selector cap 461 in the low pressure audible blow off setting (see
Replacing the pressure gauge 550 by positioning the pressure regulator 150 or pressure regulator 450 at the base of dual mode pump near the floor stand is not limiting. For example, the pressure regulator 150 or pressure regulator 450 may be disposed proximate to the handle 111 and selector lever 511 at the upper end of floor pump 500. Disposition of the pressure regulator 150 at this location puts the selector cap 151 in proximity to the mode selection lever 511 so that both selectors are within convenient reach by the user. Disposition of the pressure regulator 450 at this location puts the selector cap 461 in proximity to the mode selection lever 511 so that both selectors are within convenient reach by the user. In an embodiment, pump 500 may comprise both a pressure gauge such as 550 and a pressure regulator 150 or pressure regulator 450.
Embodiments of the pump with dual mode capabilities described above include the following:
The pump comprising a floor pump, a mini-pump, a frame pump or a foot pump.
The pump comprising a floor pump.
The pump wherein the larger diameter barrel has an inner diameter of about 44 mm.
The pump wherein the smaller diameter barrel has an inner diameter of about 32 mm.
The pump further comprising a pressure regulator comprising
a first air passage wherein a first end of the first air passage is configured to be in fluid communication with an outlet of a pump and a second end of the first air passage forms a junction with a second air passage having a first end and a second end wherein the junction of the first air passage is disposed between the first and second ends of the second air passage;
wherein the first end of the second air passage is configured to be in fluid communication with an inflatable object;
wherein the second end of the second air passage comprises a piston disposed therein, wherein the piston is slidingly engaged with the interior surface of the second end of the air passage and a distal end of the piston passes through an opening in the distalmost end of second end of the second air passage and is attached an inner surface of a base of a cap having a side wall attached to at least a portion of the base and disposed overlying and slidingly engaged with at least a portion of the exterior surface of the second end of the second air passage; a coil spring disposed around the piston and inside the second end of the second air passage; an opening in the side wall of the second end of the second air passage in fluid communication with a vent to the air external to the pressure regulator; wherein the piston and attached cap are configured to move distally away from the junction as pressure inside the second end of the second air passage increases, wherein the coil spring is in a non-compressed state when the interior of the pressure regulator is not pressurized and is in a compressed state when the interior of the pressure regulator is pressurized; when the pressure inside the second air passage is at or below a defined set point, the opening is blocked by the piston, and when the pressure inside the second air passage is above a defined set point, the opening is not blocked by the piston and air from inside the second air passage is vented to the air external to the pressure regulator.
The pump wherein venting of air through the opening in the sidewall of the second end of the second air passage produces a sound audible to a user of the pump.
The pump wherein the pressure regulator comprises a vibratory element that augments the sound of air venting through the opening in the sidewall of the second end of the second air passage.
The pump wherein the vibratory element comprises a reed.
The pump wherein decompression of the spring during venting air out of the pressure regulator pushes the proximal end of the piston back toward the junction, thereby covering the opening in the sidewall and blocking venting.
The pump wherein the pressure regulator comprises a visual indicator wherein the sidewall of the cap overlays substantially the entire length of the second end of the second air passage when the pressure regulator is not pressurized and the cap slides distally along the exterior surface of the second end of the second air passage and exposes indicia under the sidewall of the cap indicating a pressurized state as pressure increases.
The pump wherein the pressure set point of the pressure regulator is in a range from 30 to 50 psi (207 kPa to 345 kPa), or from 30 to 100 psi (207 kPa to 689 kPa).
The pump wherein the pressure set point of the pressure regulator is 40 psi (276 kPa).
The pump wherein the pressure set point of the pressure regulator is in a range from 60 to 100 psi (414 to 689 kPa).
The pump wherein the pressure set point of the pressure regulator is 70 psi (483 kPa).
The pump wherein the pressure set point of the pressure regulator is in a range from 4 to 20 psi (28 to 128 kPa).
The pump wherein the pressure regulator comprises a plurality of different pressure set points.
The pump wherein the pressure regulator comprises a first pressure set point of 40 psi (276 kPa) and a second pressure set point of 70 psi (483 kPa).
The pump wherein the cap of the pressure regulator is configured to rotate about an axis defined by the second end of the second air passage, wherein when the cap is rotated to be disposed at a first position the cap is slidable along the second end of the second air passage and the audible low pressure blow off is enabled and when the cap is rotated to be disposed at a second position the cap is not slidable along the second end of the second air passage and the audible low pressure blow off is disabled.
A notable dual mode pump comprises a dual mode pump switchable between higher volume low pressure operation and lower pressure high pressure operation and a pressure regulator with an audible low pressure blow off is described in the Summary of the Disclosed Subject Matter above. Embodiments of the pump include the following:
The pump comprising a floor pump, a mini-pump, a frame pump or a foot pump.
The pump comprising a floor pump.
The pump wherein the larger diameter barrel has an inner diameter of about 44 mm.
The pump wherein the smaller diameter barrel has an inner diameter of about 32 mm.
The pump wherein venting of air through the opening in the sidewall of the second end of the second air passage produces a sound audible to a user of the pump.
The pump wherein the pressure regulator comprises a vibratory element that augments the sound of air venting through the opening in the sidewall of the second end of the second air passage.
The pump wherein the vibratory element comprises a reed.
The pump wherein decompression of the spring during venting air out of the pressure regulator pushes the proximal end of the piston back toward the junction, thereby covering the opening in the sidewall and blocking venting.
The pump wherein the pressure regulator comprises a visual indicator wherein the sidewall of the cap overlays substantially the entire length of the second end of the second air passage when the pressure regulator is not pressurized and the cap slides distally along the exterior surface of the second end of the second air passage and exposes indicia under the sidewall of the cap indicating a pressurized state as pressure increases.
The pump wherein the pressure set point of the pressure regulator is in a range from 30 to 50 psi (207 kPa to 345 kPa), or from 30 to 100 psi (207 kPa to 689 kPa).
The pump wherein the pressure set point of the pressure regulator is 40 psi (276 kPa).
The pump wherein the pressure set point of the pressure regulator is in a range from 60 to 100 psi (414 to 689 kPa).
The pump wherein the pressure set point of the pressure regulator is 70 psi (483 kPa).
The pump wherein the pressure set point of the pressure regulator is in a range from 4 to 20 psi (28 to 128 kPa).
The pump wherein the pressure regulator comprises a plurality of different pressure set points.
The pump wherein the pressure regulator comprises a first pressure set point of 40 psi (276 kPa) and a second pressure set point of 70 psi (483 kPa).
The pump wherein the cap of the pressure regulator is configured to rotate about an axis defined by the second end of the second air passage, wherein when the cap is rotated to be disposed at a first position the cap is slidable along the second end of the second air passage and the audible low pressure blow off is enabled and when the cap is rotated to be disposed at a second position the cap is not slidable along the second end of the second air passage and the audible low pressure blow off is disabled.
Embodiments of the invention include the following, alone or in any combination.
Embodiment 1. A pressure regulator comprising a first air passage wherein a first end of the first air passage is configured to be in fluid communication with an outlet of a pump and a second end of the first air passage forms a junction with a second air passage having a first end and a second end wherein the junction of the first air passage is disposed between the first and second ends of the second air passage; wherein the first end of the second air passage is configured to be in fluid communication with an inflatable object; wherein the second end of the second air passage comprises a piston disposed therein, wherein the piston is slidingly engaged with the interior surface of the second end of the air passage and a distal end of the piston passes through an opening in the distalmost end of second end of the second air passage and is attached an inner surface of a base of a cap having a side wall attached to at least a portion of the base and disposed overlying and slidingly engaged with at least a portion of the exterior surface of the second end of the second air passage; a coil spring disposed around the piston and inside the second end of the second air passage; an opening in the side wall of the second end of the second air passage in fluid communication with a vent to the air external to the pressure regulator; wherein the piston and attached cap are configured to move distally away from the junction as pressure inside the second end of the second air passage increases, wherein the coil spring is in a non-compressed state when the interior of the pressure regulator is not pressurized and is in a compressed state when the interior of the pressure regulator is pressurized; when the pressure inside the second air passage is at or below a defined set point, the opening is blocked by the piston, and when the pressure inside the second air passage is above a defined set point, the opening is not blocked by the piston and air from inside the second air passage is vented to the air external to the pressure regulator.
Embodiment 2. The pressure regulator of Embodiment 1 wherein venting of air through the opening in the sidewall of the second end of the second air passage produces a sound audible to a user of the pressure regulator.
Embodiment 3. The pressure regulator of Embodiment 2 comprising a vibratory element that augments the sound of air venting through the opening in the sidewall of the second end of the second air passage.
Embodiment 4. The pressure regulator of Embodiment 3 wherein the vibratory element comprises a reed.
Embodiment 5. The pressure regulator of Embodiment 1 wherein decompression of the spring during venting air out of the pressure regulator pushes the proximal end of the piston back toward the junction, thereby covering the opening in the sidewall and blocking venting.
Embodiment 6. The pressure regulator of Embodiment 1 comprising a visual indicator wherein the sidewall of the cap overlays substantially the entire length of the second end of the second air passage when the pressure regulator is not pressurized and the cap slides distally along the exterior surface of the second end of the second air passage and exposes indicia under the sidewall of the cap indicating a pressurized state as pressure increases.
Embodiment 7. The pressure regulator of Embodiment 1 wherein the pressure set point is in a range from 30 to 50 psi (207 kPa to 345 kPa).
Embodiment 7a. The pressure regulator of Embodiment 1 wherein the pressure set point is in a range from 30 to 100 psi (207 kPa to 689 kPa).
Embodiment 8. The pressure regulator of Embodiment 7 wherein the pressure set point is 40 psi (276 kPa).
Embodiment 9. The pressure regulator of Embodiment 1 wherein the pressure set point is in a range from 60 to 100 psi (414 to 689 kPa).
Embodiment 10. The pressure regulator of Embodiment 9 wherein the pressure set point is 70 psi (483 kPa).
Embodiment 11. The pressure regulator of Embodiment 1 wherein the pressure set point is in a range from 4 to 20 psi (28 to 128 kPa).
Embodiment 12. The pressure regulator of Embodiment 1 comprising a plurality of different pressure set points.
Embodiment 13. The pressure regulator Embodiment 12 comprising a first pressure set point of 40 psi (276 kPa) and a second pressure set point of 70 psi (483 kPa).
Embodiment 14. The pressure regulator of Embodiment 1 wherein the cap is configured to rotate about an axis defined by the second end of the second air passage, wherein when the cap is rotated to be disposed at a first position the cap is slidable along the second end of the second air passage and the audible low pressure blow off is enabled and when the cap is rotated to be disposed at a second position the cap is not slidable along the second end of the second air passage and the audible low pressure blow off is disabled.
Embodiment 15. A pump comprising the pressure regulator of Embodiment 1.
Embodiment 16. The pump of Embodiment 15 comprising a floor pump, a mini-pump, a frame pump or a foot pump.
Embodiment 17. The pump of Embodiment 16 comprising a floor pump.
Embodiment 18. The pump of Embodiment 15 comprising a dual mode pump comprising a larger diameter barrel for inflating an inflatable object with a higher volume at a lower pressure and a smaller diameter barrel for inflating an inflatable object with a lower volume at a higher pressure, wherein the pump is switchable to operate using either the larger diameter barrel or the smaller diameter barrel.
Embodiment 19. The pump of Embodiment 18 wherein the smaller diameter barrel is configured to be telescopically disposed inside the larger diameter barrel and is switchable to be selectively attached to a plunger shaft attached to a handle so that the smaller diameter barrel operates reciprocally in the larger diameter barrel; or selectively attached to the larger diameter barrel so that the plunger shaft operates reciprocally in the smaller diameter barrel.
Embodiment 20. A pump comprising a larger diameter barrel for inflating an inflatable object with a higher volume at a lower pressure and a smaller diameter barrel telescopically disposed within the larger diameter barrel or inflating an inflatable object with a lower volume at a higher pressure; wherein the pump comprises a lever rotatably attached to an upper end cap of the smaller diameter barrel; wherein when the lever is rotated to a first position wherein the lever is engaged with a portion of the circumference of the surface of a handle and an upper face of a flange on a plunger shaft proximate to the handle to lock the lever and the upper end cap of the smaller diameter barrel to the plunger shaft, whereby moving the plunger shaft up and down moves the smaller diameter barrel reciprocally within the larger diameter barrel and the pump is effective as a larger volume relatively lower pressure device; and wherein when the lever is rotated to a second position wherein the lever is engaged with a portion of the circumference of a surface of an upper end cap of the larger diameter barrel and a lower face of a flange on the upper end cap of the larger diameter barrel to lock the lever and the upper end cap of the smaller diameter barrel to the upper end cap of the larger diameter barrel, whereby moving the plunger shaft up and down moves a plunger at the bottom of the plunger shaft reciprocally within the smaller diameter barrel and the pump is effective as a smaller volume relatively higher pressure device.
Embodiment 21. The pump of Embodiment 20 wherein the larger diameter barrel has an inner diameter of about 44 mm.
Embodiment 22. The pump of Embodiment 20 wherein the smaller diameter barrel has an inner diameter of about 32 mm.
Embodiment 23. The pump of Embodiment 20 comprising a floor pump, a mini-pump, a frame pump or a foot pump.
Embodiment 24. The pump of Embodiment 23 comprising a floor pump.
Embodiment 25. The pump of Embodiment 20 further comprising a pressure regulator comprising
a first air passage wherein a first end of the first air passage is configured to be in fluid communication with an outlet of a pump and a second end of the first air passage forms a junction with a second air passage having a first end and a second end wherein the junction of the first air passage is disposed between the first and second ends of the second air passage; wherein the first end of the second air passage is configured to be in fluid communication with an inflatable object; wherein the second end of the second air passage comprises a piston disposed therein, wherein the piston is slidingly engaged with the interior surface of the second end of the air passage and a distal end of the piston passes through an opening in the distalmost end of second end of the second air passage and is attached an inner surface of a base of a cap having a side wall attached to at least a portion of the base and disposed overlying and slidingly engaged with at least a portion of the exterior surface of the second end of the second air passage; a coil spring disposed around the piston and inside the second end of the second air passage; an opening in the side wall of the second end of the second air passage in fluid communication with a vent to the air external to the pressure regulator; wherein the piston and attached cap are configured to move distally away from the junction as pressure inside the second end of the second air passage increases, wherein the coil spring is in a non-compressed state when the interior of the pressure regulator is not pressurized and is in a compressed state when the interior of the pressure regulator is pressurized; when the pressure inside the second air passage is at or below a defined set point, the opening is blocked by the piston, and when the pressure inside the second air passage is above a defined set point, the opening is not blocked by the piston and air from inside the second air passage is vented to the air external to the pressure regulator.
Embodiment 26. The pump of Embodiment 25 wherein venting of air through the opening in the sidewall of the second end of the second air passage produces a sound audible to a user of the pump.
Embodiment 27. The pump of Embodiment 26 wherein the pressure regulator comprises a vibratory element that augments the sound of air venting through the opening in the sidewall of the second end of the second air passage.
Embodiment 28. The pump of Embodiment 27 wherein the vibratory element comprises a reed.
Embodiment 29. The pump of Embodiment 25 wherein decompression of the spring during venting air out of the pressure regulator pushes the proximal end of the piston back toward the junction, thereby covering the opening in the sidewall and blocking venting.
Embodiment 30. The pump of Embodiment 25 wherein the pressure regulator comprises a visual indicator wherein the sidewall of the cap overlays substantially the entire length of the second end of the second air passage when the pressure regulator is not pressurized and the cap slides distally along the exterior surface of the second end of the second air passage and exposes indicia under the sidewall of the cap indicating a pressurized state as pressure increases.
Embodiment 31. The pump of Embodiment 25 wherein the pressure set point of the pressure regulator is in a range from 30 to 50 psi (207 kPa to 345 kPa).
Embodiment 31a. The pump of Embodiment 25 wherein the pressure set point of the pressure regulator is in a range from 30 to 100 psi (207 kPa to 689 kPa).
Embodiment 32. The pump of Embodiment 25 wherein the pressure set point of the pressure regulator is 40 psi (276 kPa).
Embodiment 33. The pump of Embodiment 25 wherein the pressure set point of the pressure regulator is in a range from 60 to 100 psi (414 to 689 kPa).
Embodiment 34. The pump of Embodiment 25 wherein the pressure set point of the pressure regulator is 70 psi (483 kPa).
Embodiment 35. The pump of Embodiment 25 wherein the pressure set point of the pressure regulator is in a range from 4 to 20 psi (28 to 128 kPa).
Embodiment 36. The pump of Embodiment 25 wherein the pressure regulator comprises a plurality of different pressure set points.
Embodiment 37. The pump of Embodiment 25 wherein the pressure regulator comprises a first pressure set point of 40 psi (276 kPa) and a second pressure set point of 70 psi (483 kPa).
Embodiment 38. The pump of Embodiment 25 wherein the cap of the pressure regulator is configured to rotate about an axis defined by the second end of the second air passage, wherein when the cap is rotated to be disposed at a first position the cap is slidable along the second end of the second air passage and the audible low pressure blow off is enabled and when the cap is rotated to be disposed at a second position the cap is not slidable along the second end of the second air passage and the audible low pressure blow off is disabled.
Embodiment 39. A pump comprising a larger diameter barrel for inflating an inflatable object with a higher volume at a lower pressure and a smaller diameter barrel telescopically disposed within the larger diameter barrel or inflating an inflatable object with a lower volume at a higher pressure; wherein the pump comprises a lever rotatably attached to an upper end cap of the smaller diameter barrel; wherein when the lever is rotated to a first position wherein the lever is engaged with a portion of the circumference of the surface of a handle and an upper face of a flange on a plunger shaft proximate to the handle to lock the lever and the upper end cap of the smaller diameter barrel to the plunger shaft, whereby moving the plunger shaft up and down moves the smaller diameter barrel reciprocally within the larger diameter barrel and the pump is effective as a larger volume relatively lower pressure device; wherein when the lever is rotated to a second position wherein the lever is engaged with a portion of the circumference of a surface of an upper end cap of the larger diameter barrel and a lower face of a flange on the upper end cap of the larger diameter barrel to lock the lever and the upper end cap of the smaller diameter barrel to the upper end cap of the larger diameter barrel, whereby moving the plunger shaft up and down moves a plunger at the bottom of the plunger shaft reciprocally within the smaller diameter barrel and the pump is effective as a smaller volume relatively higher pressure device; and a pressure regulator comprising a first air passage wherein a first end of the first air passage is configured to be in fluid communication with an outlet of a pump and a second end of the first air passage forms a junction with a second air passage having a first end and a second end wherein the junction of the first air passage is disposed between the first and second ends of the second air passage; wherein the first end of the second air passage is configured to be in fluid communication with an inflatable object; wherein the second end of the second air passage comprises a piston disposed therein, wherein the piston is slidingly engaged with the interior surface of the second end of the air passage and a distal end of the piston passes through an opening in the distalmost end of second end of the second air passage and is attached an inner surface of a base of a cap having a side wall attached to at least a portion of the base and disposed overlying and slidingly engaged with at least a portion of the exterior surface of the second end of the second air passage; a coil spring disposed around the piston and inside the second end of the second air passage; an opening in the side wall of the second end of the second air passage in fluid communication with a vent to the air external to the pressure regulator; wherein the piston and attached cap are configured to move distally away from the junction as pressure inside the second end of the second air passage increases, wherein the coil spring is in a non-compressed state when the interior of the pressure regulator is not pressurized and is in a compressed state when the interior of the pressure regulator is pressurized; when the pressure inside the second air passage is at or below a defined set point, the opening is blocked by the piston, and when the pressure inside the second air passage is above a defined set point, the opening is not blocked by the piston and air from inside the second air passage is vented to the air external to the pressure regulator.
Embodiment 40. The pump of Embodiment 39 wherein the larger diameter barrel has an inner diameter of about 44 mm.
Embodiment 41. The pump of Embodiment 39 wherein the smaller diameter barrel has an inner diameter of about 32 mm.
Embodiment 42. The pump of Embodiment 39 comprising a floor pump, a mini-pump, a frame pump or a foot pump.
Embodiment 43. The pump of Embodiment 42 comprising a floor pump.
Embodiment 44. The pump of Embodiment 39 wherein venting of air through the opening in the sidewall of the second end of the second air passage produces a sound audible to a user of the pump.
Embodiment 45. The pump of Embodiment 44 wherein the pressure regulator comprises a vibratory element that augments the sound of air venting through the opening in the sidewall of the second end of the second air passage.
Embodiment 46. The pump of Embodiment 45 wherein the vibratory element comprises a reed.
Embodiment 47. The pump of Embodiment 39 wherein decompression of the spring during venting air out of the pressure regulator pushes the proximal end of the piston back toward the junction, thereby covering the opening in the sidewall and blocking venting.
Embodiment 48. The pump of Embodiment 39 wherein the pressure regulator comprises a visual indicator wherein the sidewall of the cap overlays substantially the entire length of the second end of the second air passage when the pressure regulator is not pressurized and the cap slides distally along the exterior surface of the second end of the second air passage and exposes indicia under the sidewall of the cap indicating a pressurized state as pressure increases.
Embodiment 49. The pump of Embodiment 39 wherein the pressure set point of the pressure regulator is in a range from 30 to 50 psi (207 kPa to 345 kPa).
Embodiment 49a. The pump of Embodiment 39 wherein the pressure set point of the pressure regulator is in a range from 30 to 100 psi (207 kPa to 689 kPa).
Embodiment 50. The pump of Embodiment 39 wherein the pressure set point of the pressure regulator is 40 psi (276 kPa).
Embodiment 51. The pump of Embodiment 39 wherein the pressure set point of the pressure regulator is in a range from 60 to 100 psi (414 to 689 kPa).
Embodiment 52. The pump of Embodiment 39 wherein the pressure set point of the pressure regulator is 70 psi (483 kPa).
Embodiment 53. The pump of Embodiment 39 wherein the pressure set point of the pressure regulator is in a range from 4 to 20 psi (28 to 128 kPa).
Embodiment 54. The pump of Embodiment 39 wherein the pressure regulator comprises a plurality of different pressure set points.
Embodiment 55. The pump of Embodiment 39 wherein the pressure regulator comprises a first pressure set point of 40 psi (276 kPa) and a second pressure set point of 70 psi (483 kPa).
Embodiment 56. The pump of Embodiment 39 wherein the cap of the pressure regulator is configured to rotate about an axis defined by the second end of the second air passage, wherein when the cap is rotated to be disposed at a first position the cap is slidable along the second end of the second air passage and the audible low pressure blow off is enabled and when the cap is rotated to be disposed at a second position the cap is not slidable along the second end of the second air passage and the audible low pressure blow off is disabled.
The present application claims priority to U.S. Provisional Application No. 63/087,936, filed Oct. 6, 2020, the disclosure of which is incorporated herein by reference in its entirety.
Number | Date | Country | |
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63087936 | Oct 2020 | US |